WO2004109195A2 - Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation - Google Patents
Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation Download PDFInfo
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- WO2004109195A2 WO2004109195A2 PCT/US2004/015817 US2004015817W WO2004109195A2 WO 2004109195 A2 WO2004109195 A2 WO 2004109195A2 US 2004015817 W US2004015817 W US 2004015817W WO 2004109195 A2 WO2004109195 A2 WO 2004109195A2
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Classifications
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
- H02S40/40—Thermal components
- H02S40/44—Means to utilise heat energy, e.g. hybrid systems producing warm water and electricity at the same time
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S99/00—Subject matter not provided for in other groups of this subclass
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S20/00—Solar heat collectors specially adapted for particular uses or environments
- F24S20/30—Solar heat collectors for heating objects, e.g. solar cookers or solar furnaces
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
- F24S23/70—Arrangements for concentrating solar-rays for solar heat collectors with reflectors
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S23/00—Arrangements for concentrating solar-rays for solar heat collectors
- F24S23/70—Arrangements for concentrating solar-rays for solar heat collectors with reflectors
- F24S23/81—Arrangements for concentrating solar-rays for solar heat collectors with reflectors flexible
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S30/00—Arrangements for moving or orienting solar heat collector modules
- F24S30/40—Arrangements for moving or orienting solar heat collector modules for rotary movement
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24S—SOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
- F24S50/00—Arrangements for controlling solar heat collectors
- F24S50/20—Arrangements for controlling solar heat collectors for tracking
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02S—GENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
- H02S40/00—Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
- H02S40/30—Electrical components
- H02S40/38—Energy storage means, e.g. batteries, structurally associated with PV modules
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B40/00—Technologies aiming at improving the efficiency of home appliances, e.g. induction cooking or efficient technologies for refrigerators, freezers or dish washers
- Y02B40/18—Technologies aiming at improving the efficiency of home appliances, e.g. induction cooking or efficient technologies for refrigerators, freezers or dish washers using renewables, e.g. solar cooking stoves, furnaces or solar heating
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/40—Solar thermal energy, e.g. solar towers
- Y02E10/44—Heat exchange systems
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/40—Solar thermal energy, e.g. solar towers
- Y02E10/47—Mountings or tracking
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/50—Photovoltaic [PV] energy
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/60—Thermal-PV hybrids
Definitions
- the present invention relates generally to the urgent need to reduce worldwide emissions of harmful gases including greenhouse gases such as carbon dioxide. More particularly the ambition of the present invention is to provide practical and cost effective means enabling worldwide reduction of emissions of greenhouse gases including carbon dioxide and other harmful gases emanating from the widespread burning of carbon containing fuels including fuel wood for cooking purposes. In this context the present invention aims to provide strong incentives for the replacement of unaccounted polluting fuels burned for cooking purposes, by sunlight, as a convenient clean and safe heat and/or light source for cooking and/or electricity generation.
- the present invention provides a method and apparatus capable of augmenting convenience of cooking and/or electricity generation on sunlight to such a high level that cooking and/or electricity generation on sunlight becomes more convenient worldwide than cooking on carbon containing fuels like fuel wood.
- GNP Gross National Product
- casu quo additionally said advanced hot box type light cookers replacing widely used kerosene burning cookers could save on average more than a banel of oil per person per year. More than 80 (eighty) percent of the world's population lives in the sunbelt area, between the 40° North parallel (the Beijing-Korea- Japan-New York-Madrid-Ankara-Tasjkent latitude) and the 40° South parallel (the Cape Town-Melbourne-wholesome Aires latitude).
- an advanced hot box type light cooker of the present invention can be made to provide year-round net to food peak cooking power of 2,000 watts per square meter and/or photovoltaic cell peak sunlight inadiation of 1,500 watts per square meter of hot box light aperture area.
- a six member family a .35 meter x .70 meter light aperture cooker enables convenient cooking, for a four person family a .35 meter x .50 meter or a .25 meter x .70 meter light aperture is convenient, for a two adults family a .25 meter x .50 meter light aperture is convenient.
- For one person a .25 meter x .25 meter light aperture cooker is convenient.
- the estimated cost of said light cookers can be paid for in less than a year by the commercial trade value of the emission rights of the carbon dioxide avoided through the use of said light cookers.
- the method of reducing carbon dioxide emissions emanating from the widespread use of fuels like fuel wood for cooking purposes is therefore a most cost effective and practical method for achieving worldwide reduction of carbon dioxide emissions, thereby simultaneously mitigating present and future constraints on worldwide economic growth as may become imposed by present casu quo future carbon dioxide emission limits.
- said method provides the following additional benefits: a) Method enables cooking of better tasting and healthier dishes. b) Method enables cleaner, safer and healthier ways of cooking.
- Method enables freeing many millions of people from the chores of hunting for ever scarcer fuel wood and of attending to smoking, badly smelling cooking fires causing widespread lung and eye diseases. Any time required for sun- tracking of the apparatus of the present invention is far less than the time required to keep present cooking fires under control and/or time required to find wood.
- Method reduces the need for fuel wood, reduces deforestation and destruction of wildlife.
- many of serious and extended forest fires such as experienced each year in e.g. Asia, Australia, Europe and the U.S.A., may be reduced in frequency if cookers on light with augmented power can be made available and convenient for use instead of the wood burning camp fires and barbecues now being popular for outdoor cooking.
- electricity may be produced efficiently and conveniently by photovoltaic cells positioned under an optimized minor component of the apparatus of the present invention, thereby enabling worldwide affordable access to electricity, light and education, casu quo further worldwide reduction of emissions.
- the carbon dioxide emissions that can be avoided by one family using the efficient solar cooker/PN electricity generator of the present invention, qualified for the accrual of tradable carbon dioxide emission rights casu quo tradable carbon dioxide emission credits through a mechanism of quality assurance and/or registration numbers casu quo country and/or state license plate numbers can compensate the carbon dioxide emissions of about half a dozen compact cars, or can equal the carbon sink capacity of one acre of mature tropical forest.
- PN cells photovoltaic solar cells
- Numerous prior art references describing photovoltaic solar cells, hereinafter called PN cells, for electricity generation were screened through prior art searches in US classification 257/457 and related classifications as well as in international classification H01L/27 and related classifications, of which patent no. US 6,696,731 assigned to Samsung corporation is a typical example.
- the prior art pertaining to PN cells casu quo PN cell modules for electricity generation fails to disclose or suggest a combination of PN cells and a solar cooker for simultaneous casu quo alternating cooking and/or electricity generating operations.
- the prior art concentrating type of solar cookers such as for example the parabolic minor type having the minor positioned under the cooking vessel has too many drawbacks such as for example cumbersome sun tracking requirements, local hot spots burning the food, glare blinding the cook, sensitivity to wind and food spills fouling said minor, to be considered for mass cooking.
- the prior art fails to quantify solar energy collectable by the prior art solar cooker embodiments and also fails to disclose or suggest prior art solar cooker performance in terms of net to food cooking power achievable in operation of said prior art solar cooker embodiments, the foregoing applies to all prior art solar cooker concepts including prior art solar cooker embodiments of the hot box type and of the concentrating flat minor casu quo the concentrating curved minor type.
- An "Evaluation of the International Standard Test Procedure for testing Solar Cookers and Reporting Performance" is presented by P.A. Funk et al. in "Solar Energy" 2000, volume 68, pages 01-07, and references therein.
- the cooking performance of hot box solar cookers according to the state-of-the-art is poor, especially so when solar radiation and ambient temperature are low, such as is the case in winter and also in the other seasons during morning hours and late afternoon hours, when the sun is low and the angle of incidence of beam radiation is large.
- the cooking time around mid-day in the summer for a dish is about three hours. During said three hours the position of the cooker box must be adjusted every half-hour, tracking the sun to obtain radiation in the cooker aperture.
- State-of-the-art cookers are characterized by a very slow build-up of net to food cooking power, high heat loss through the light admitting aperture and are suitable only for the boiling type of cooking where cooking temperature does not exceed about one hundred centigrade.
- the quantities of heat required for physical and chemical changes involved in the cooking process proper are small relative to the sensible heat required to bring food to boiling temperature and to compensate heat losses that occur during warming up and cooking. Even during optimum conditions of solar radiation the temperatures required for frying or baking cannot be sustained. Because the dominant mode of heat transfer to the food is by conduction from the absorber 1 to the vessel bottom 2 cooking time exponentially increases when the area ratio of absorber area to vessel bottom area decreases, in other words when more vessels are placed in the cooker cavity.
- State-of-the art solar cooker designs fail to disclose or suggest inexpensive means to obtain higher net to food cooking power casu quo desirable cooking frequencies casu quo warm-keeping of meals on the table or under off-sunshine conditions.
- State-of-the art photovoltaic (hereinafter called PN) electricity generation systems of the non-tracking type are characterized by a slow build-up of net electric power delivery, especially so at low and/or unfavorable angles of incidence of sunlight on the PN cells.
- State-of-the art cooker designs fail to disclose or suggest any combination of convenient cooking and convenient electricity generating operations in one apparatus wherein PN modules are compelled by the movement of said apparatus to track the sun in a two-axis manner resulting simultaneously in optimum angles of sunlight incidence on said PN cells and said cooker.
- State-of-the art solar cooking designs fail to disclose or suggest any method and/or apparatus capable of inducing many people to substitute carbon containing fuels for cooking, by sunlight.
- the state-of-the art fails to disclose or suggest any method casu quo any mechanism whereby trade values of emission rights casu quo carbon credits accruing from emissions avoided through the use of the present method and/or apparatus can be monetized casu quo used to pay for the cost of said method and/or said apparatus and/or to create a source of ongoing revenue for the users and/or governments promoting the use of said method and apparatus.
- the present invention teaches such a method and apparatus offering many millions of people a substantially expanded latitude, light, temperature and time operating window for convenient cooking and convenient electricity generation on sunlight, thereby not only offering attractive new cooking operations, but also affordable access to electric light, refrigerator, television, computer, casu quo entertainment and education and offering many governments and/or organizations a practical means for sustainable development that can be implemented immediately.
- the present invention relates generally to the urgent need to reduce worldwide emissions of harmful gases including greenhouse gases such as carbon dioxide, as an estimated six thousand million metric tons of carbon dioxide emitted annually are emanating from carbon containing fuels such as firewood burned for cooking and/or water heating purposes by some two to three thousand million people living in developing countries casu quo in rural areas of the earth the method and apparatus of the present invention is conceived casu quo expected to qualify for the accrual of tradable carbon dioxide emission rights casu quo of tradable carbon dioxide emission credits that can be monetized to pay for the cost of the method and apparatus of the present invention and/or to create a source of ongoing revenue, thereby inducing many people to substitute said carbon containing fuels by sunlight for cooking and/or water heating and/or electricity generation and inducing many governments and/or non government organizations to support casu quo to enable the introduction to casu quo the continued use by their people of the method and apparatus of the present invention.
- greenhouse gases such as carbon dioxide
- the present invention provides method and apparatus enabling gainful replacement of highly polluting fuels, such as for example fuel wood for cooking purposes by light, through greatly augmented convenience of cooking on light.
- Convenience of cooking on light is augmented according to the present invention by increasing the useful net to food cooking power of a hot box type solar cooker especially at low solar altitudes, such as prevail in early morning and late afternoon worldwide and at higher latitudes by an order of magnitude compared to state-of-the-art hot box type solar cookers presently available.
- Optimized light energy transfer from available solar radiation to foods, beverages and other substances to be cooked casu quo heated is provided through the use of a hot box type light cooker comprising a cavity having well insulated side walls and lower and upper horizontal walls of a heat resistant heat conducting material coated on the illuminated side with a long-life heat resistant spectrally selective coating capable of converting light to heat.
- Said spectrally selective coating having a high abso tivity coefficient ( ⁇ ) for incoming light in combination with a low emissivity coefficient ( ⁇ ) for reversed radiation of heat.
- Sheets of a suitable heat resistant transparent material such as for example glass or Teflon ® are provided under said lower horizontal wall and above said upper horizontal wall at a distance from said selective coatings in order to protect said selective coatings and to provide an insulating layer of air to minimize heat losses to the ambient.
- Net to food cooking power augmentation according to the present invention is achieved in major part by heating the food from below with heat provided by an approximately horizontally positioned lower heat conducting wall heated by reflected light reaching the underside, the spectrally selective coated side, of said lower heat conducting wall.
- Non-conventional reflected solar radiation is provided to said lower heat conducting wall from below through the use of concave bent and/or bendable minors/reflectors having variable tilt angles and/or curvatures optimized for desired cooking casu quo heating operations and for the solar altitudes at the time of the days, seasons and latitudes from equator to arctic where the light cooker may be used.
- Said minors/reflectors are positioned under the hot box type light cooker, extending sideways and upwards therefrom in such a manner that they direct, in an optimum manner, a major part of the solar radiation, incident on the light cooker assembly, to the underside of the light cooker where light is spontaneously converted by the spectrally selective coating to heat, which heat is conducted instantly, with minimum resistance, to foods/beverages to be cooked/heated.
- Conventional direct solar radiation is provided from above to the upper heat conducting wall on the spectrally selective coated side, where light is spontaneously converted to heat, which heat is conducted instantly with minimum resistance and radiated to the food located below said upper heat conducting wall.
- Convenience of cooking is further augmented according to the present invention by cooking directly on and in said heat conducting walls, said walls having been shaped by pressing said walls into tray-shaped thin- walled cooking trays.
- the use of conventional cooking pots is thereby avoided and heat transfer resistance to food reduced by an order of magnitude.
- a further augmentation of convenience of cooking according to the present invention is provided by serving the cooked hot food directly onto the table in the well insulated hot box tray, in order to keep the food warm during the meal.
- the method and apparatus of the present invention are characterized by enabling a fast build-up of a convenient level of cooking power and/or a convenient level of electricity generating power within about half an hour from sunrise and maintaining said convenient levels of cooking power and/or electricity generating power late in the day, until sunset.
- the method and apparatus of the present invention can have a variety of embodiments, in one aspect ranging in size and net to food cooking power from a basic method and apparatus having light-acquiring apertures casu quo windows of identical sizes and an upper minor of the same or larger sizes as said windows, to a method and apparatus having a wider first window and having an upper minor of the same or larger sizes than said wider first window.
- said cooking cavity may be positioned approximately horizontally into or above a half-ba ⁇ el shaped concave reflective cavity, for cooking foods.
- said cooker cavity may be positioned vertically, either sideways from a quarter-banel shaped concave reflective cavity providing light to one side of said cooker cavity or into a half-banel shaped concave reflective cavity providing light to two sides of said cooker cavity.
- PV cells may be positioned temporarily and/or permanently under said upward minor.
- PV electricity power generation according to the method and apparatus of the present invention is characterized by enabling a fast build-up of high levels of PV electricity generating power that can be an order of magnitude higher than present PV power levels provided by state-of-the art non-tracking PV systems, especially so at low solar altitude angles ⁇ s prevailing in winters, higher latitudes, early mornings and late afternoons.
- a halogen light source may be provided for positioning above or under said cooker cavity for cooking operations when sunlight is not available casu quo marginal and electricity can be made available.
- Cooking power, attainable worldwide at different latitudes (64° North - 0° Equator - 64° South) and different seasons (winter, spring/autumn, summer) is shown simulated in FIG. 11.
- PV power cell light inadiation attainable worldwide at said different latitudes and in said different seasons is shown simulated in FIG. 12.
- the present invention relates generally to the urgent need to reduce worldwide emissions of harmful gases including greenhouse gases such as carbon dioxide. Accordingly it is an object of the present invention to provide a cost effective, financially attractive and convenient method and apparatus inducing many people worldwide to rapidly substitute polluting carbon containing fuels for cooking and/or electricity generation by an abundant clean non-commercial safe heat source - sunlight. Therefore method and apparatus are provided capable of augmenting attractiveness and convenience of cooking and/or electricity generation on sunlight to such a high level that cooking and/or electricity generation on sunlight can rapidly become more attractive and more convenient worldwide than cooking and/or electricity generation on burning carbon containing fuels, such as for example fuel wood.
- Cost effectiveness and financial attractiveness of cooking and/or electricity generation on sunlight is augmented according to the present invention by providing method and apparatus qualifying for the accrual of tradable carbon dioxide emission rights casu quo tradable carbon dioxide emission credits that can be monetized to pay for at least the cost of said method and apparatus and alternately and/or additionally also create a source of ongoing revenue for the users and/or for governments and/or organizations that promote the introduction and continued use of the method and apparatus of the present invention.
- said apparatus is preferably manufactured casu quo produced under a mechanism of quality assurance and equipped with punched-in registration numbers casu quo with punched-in country casu quo state license plate numbers qualifying said apparatus for accrual of tradable carbon dioxide emission rights casu quo tradable carbon dioxide emission credits.
- Convenience of cooking on sunlight is augmented according to the present invention by increasing the useful net to food cooking power of a hot box type light cooker by an order of magnitude compared to state-of-the-art hot box type solar cookers having the same hot box dimensions and simultaneously decreasing the cost per watt net to food cooking power casu quo the cost per watt net electric power to a better than competitive level.
- FIGS. 1, 2C Show a sectional view and simulated net to food cooking power of a typical prior art hot box type solar cooker, as the lowest solid line curve.
- FIGS. 2 A, 2B, 2C Show the method and apparatus of the present invention in a basic embodiment equipped with a tiltable flat upper minor, also showing attainable net to food cooking power as the highest solid line curve and total power as the broken line curve.
- FIGS. 3A, 3B, 3C Show the method and apparatus of the present invention in an embodiment with a tiltable and bendable upper minor, also showing attainable net to food cooking power as the solid line curve and total power as the broken line curve.
- FIGS. 4A-4L Show examples of useful basic cooking concepts with progressively improving thermal communication between solar radiation and food.
- FIGS. 5A-7H Show sectional views of prefened embodiments of the method and apparatus of the present invention also showing net to food cooking power attainable without booster minors over a solar day at various latitudes in different seasons as solid line curves, total power is shown as broken line curves.
- FIGS. 8A-8E Show examples of the method and apparatus of the present invention in a reduced cost embodiment, showing attainable net to food cooking power in different seasons as solid line curves.
- FIGS. 9A-9D Show examples of the method and apparatus of the present invention in prefened embodiments for cooking soups, heating liquids and/or sterilizing water.
- FIGS. 10A-10H Show examples of the method and apparatus of the present invention in a prefe ⁇ ed embodiment for PV electricity generation, also showing PV cell inadiation attainable without booster minors over a solar day at various latitudes in different seasons, as solid line curves.
- FIG. 11 Shows cooking power attainable with the method and apparatus of the present invention without booster minors worldwide at various latitudes in different seasons, net to food cooking power is shown as solid line curves, total power is shown as broken line curves.
- FIG. 12 Shows PV cell light inadiation attainable with the method and apparatus of the present invention without booster minors worldwide at various latitudes in different seasons, as solid line curves.
- FIG. 13 Shows examples of tray-shaped absorbers casu quo cooking trays.
- FIGS. 14A, 14B Show lower cooker cavities with tray-shaped absorbers casu quo flat absorbers.
- FIGS. 14C, 14D Show upper cooker cavities with tray-shaped absorbers casu quo flat absorbers.
- FIGS. 15A-15B Show total cooker cavities with tray-shaped absorbers casu quo flat absorbers.
- FIG. 16 Shows total cooker cavity with lower tray-shaped absorber and downward indented upper absorber.
- FIGS. 17A-17D Show examples of hinged, tiltable, bendable minor, also showing upper profiled guide rail casu quo lower profiled guide rail with minor holding casu quo minor drive means and showing optimum bendable minor tilt angles and bendable minor compressions as a function of solar altitude angle ⁇ s and bendable minor height h m .
- FIGS. 18A-18I Show examples of construction casu quo embodiments of half-banel shaped reflective cavities.
- FIGS. 19A-19D Show examples of embodiments of the method and apparatus of the present invention for PV electricity generation.
- FIGS. 20A-20D Show examples in afternoon orientation of embodiments of halogen light sources useful in the method and apparatus of the present invention.
- FIGS. 21 A, 21B Show examples of embodiments for water purification by heating and light inadiating water from above through a light-transparent cover and from below in a light-transparent tray-shaped absorber as shown in FIG.
- FIG. 21A casu quo heating water from below in an opaque tray-shaped absorber as shown in FIG. 21B.
- FIG. 22 Shows an example of a prefened embodiment of the method and apparatus of the present invention for simultaneous cooking and PV power generation.
- FIGS. 23A-23C Show examples of an embodiment of the method and apparatus of the present invention equipped with optional booster minors.
- FIG. 24 Shows an example of a prefened embodiment suitable for windy environments incorporating two upper guide rails supported by a stabilized upper structure.
- FIGS. 22 Shows an example of a prefened embodiment of the method and apparatus of the present invention for simultaneous cooking and PV power generation.
- FIGS. 23A-23C Show examples of an embodiment of the method and apparatus of the present invention equipped with optional booster minors.
- FIG. 24 Shows an example of a prefened embodiment suitable for windy environments incorporating two upper guide rails supported by a stabilized upper structure.
- 25A-25E Show views of a most prefe ⁇ ed compact embodiment without upper structure, optimized for simultaneous cooking and electricity generation in one operation casu quo one movement by a bendable minor of a rocking PV module and furthermore equipped with guide rail plates with punched-in registration numbers intended to qualify the apparatus for accrual of emission credits.
- Drain hole 12 Storage rolls for reflective sheet, foil or film (optional)
- Shadow casting cord serving as azimuth tracking aid casu quo gnomon in shadow-casting communication with vertical hairline casu quo bulls-eyes line on the minor surface of minor/reflector 14 casu quo with horizontal hairline casu quo bulls-eyes line on the upper surface of first window Wi, said cord 19 also serving as support cord for shadow-casting rod casu quo bead 35.
- FIG. 4A teaches cooking food in vessels, heated from below by a flat absorber, cavity top being insulated.
- FIG. 4B teaches cooking food in vessels, heated from below in "au bain-marie” manner by a tray-shaped absorber, cavity top being insulated.
- FIG. 4C teaches cooking food directly in tray-shaped absorber heated from below, cavity top being insulated.
- FIG. 4D teaches cooking food in "steam cooking” manner above boiling water in tray- shaped absorber heated from below, cavity top being insulated.
- FIG. 4E teaches cooking food in vessels heated from below and from above by flat plate absorbers.
- FIG. 4F teaches cooking in vessels heated from below in "au bain-marie” manner by a tray-shaped absorber and from above by a flat plate absorber.
- FIG. 4G teaches cooking food directly in tray-shaped absorber heated by conduction from below and radiantly heated from above by flat plate absorber.
- FIG. 4H teaches cooking food in "steam cooking” manner, food being heated from below by steam from tray-shaped absorber and radiantly heated from above by flat plate absorber.
- FIG. 41 teaches cooking food in vessels, heated in "au bain-marie” manner from below by a tray-shaped absorber and radiantly heated from above by a tray-shaped absorber.
- FIG. 4J teaches cooking food, directly in tray-shaped absorber, food being heated by conduction from below and radiantly from above by tray-shaped absorbers, food temperature being made visible by a temperature indicator casu quo a thermometer.
- FIG. 4K teaches cooking food directly in and between tray-shaped absorbers heated by conduction from below and from above by tray-shaped absorbers.
- FIG. 4L teaches cooking food in "hamburger" manner directly between tray-shaped absorbers, heated by conduction from below and from above by tray-shaped absorbers.
- angle of incidence ⁇ j is the angle between the light rays and the surface normal.
- solar altitude angle ⁇ s is the angle between the sun's rays and the horizontal plane.
- ⁇ s is the angle of the sun's rays measured in the horizontal plane from due south, westward being designated as positive. For the southern hemisphere it is measured from due north, eastward positive.
- the term "incident” is intended to mean: falling on or falling upon.
- the te ⁇ n “spectrally selective surfaces” is intended to mean: surfaces having high absorption properties ( ⁇ ) for light radiation in wavelengths of the full solar spectrum combined with low heat radiation casu quo heat emission properties ( ⁇ ) in wavelengths of the infrared spectrum.
- casu quo is intended to mean: or, as the case may be.
- au bain-marie is intended to mean: standing on casu quo in a layer of a liquid.
- convex is intended to mean: outwardly curved casu quo bulging out.
- concave is intended to mean: inwardly curved casu quo hollow.
- cavity is intended to mean: a hollow space.
- net cavity area is intended to mean: the area in square meters of the cross section in the horizontal plane of said cooker cavity.
- FIG. 2A/2B the method and apparatus of the present invention is shown in a first useful basic conceptual design in forenoon and afternoon orientation.
- a cooker cavity 0, having well-insulated side walls 4, is provided with a concave tray 1 pressed into a desired shape and dimensions from a sheet of heat conducting heat resistant metal coated on the convex casu quo the illuminated side with a heat resistant spectrally selective coating, capable of converting light energy to heat.
- a sheet casu quo plate 7 of a heat resistant material highly transparent for sunlight such as for example a fluorocarbon such as Teflon FEP ® or a tempered low-iron glass with an anti-reflective coating is provided and positioned under said coating.
- a second sheet casu quo plate 8 of said transparent material may be installed under said sheet casu quo plate 7 for enhanced protection and further reduction of heat loss.
- Said cooker cavity is positioned, with the spectrally selective coating downward, facing the reflected light into casu quo onto a still-air concave reflective cavity 9 having the shape of a half-banel with a horizontal axis of rotation.
- the concave walls 9 of said half- banel are highly reflective and are facing the underside of said cooker cavity.
- the two end walls 10 of said half-banel perpendicular to said axis of rotation of the half-banel are highly reflective and may be flat, the curved part of said half-banel parallel to its axis of rotation is cylindrical and may be a continuous curve or made up of a sequence of flat and/or curved segments approximating any desired shape of for example circular, catenary, parabolic, elliptic or polygonal shape or any combination of said curved shapes and flat shapes.
- Said desired shape is preferably made partly or wholly of a flexible reflective sheet casu quo foil material, enabling variable shape casu quo curvature optimized for desired cooking casu quo heating operations.
- Said still-air concave reflective cavity 9 is located partly under said cooker cavity 0, partly extending sideways therefrom and terminating as an approximately horizontal light admitting aperture i, hereinafter called first window, covered with a plate or sheet 13 of a material highly transparent to sunlight.
- first window W t Above said first window W t is provided a hinged tiltable minor/reflector 14 facing the sun, tiltable on hinges 15, reflecting sunlight to said first window Wi and to the top of the cooker, said minor having a height approximately equal to the diameter of said half-banel.
- a sheet casu quo plate 7 of a heat resistant material highly transparent for sunlight such as for example a fluorocarbon like Teflon FEP ® , or a tempered low-iron glass with an anti-reflective coating, is provided and positioned above said selective coating.
- a second sheet casu quo plate 8 of said transparent material may be installed above said sheet casu quo plate 7 for enhanced protection and further reduction of heat loss.
- the space enclosed between said cover cavity 0 and said cooker cavity 0 is the total cooker cavity 0 and may have a total height that admits cooking vessels.
- the apparatus of the present invention is oriented to face the sun, cord 19 casting its shadow on a vertical hairline on the minor surface of minor 14.
- the tiltable minor facing the sun is adjusted to the solar altitude angle, for example by means of a guide rail 16.
- the optimum minor tilt angle is 70°, at ⁇ s of 30° the optimum minor tilt angle is 80°, at ⁇ s of 45° the optimum minor tilt angle is 90° and so on until the ⁇ s is 90° and the optimum minor tilt angle is 120° from whereon the minor tilt angle is reduced as the sun goes lower.
- Light is collected by the tiltable minor and reflected through said first window wi via a second window w 2 to the underside of the cooker cavity where it is converted to heat by the selective coating and conducted to the food positioned on the tray.
- said reflected light is the major source of cooking power.
- Part of the light collected by the tiltable minor is reflected through the light aperture area w 3> hereinafter called third window, to the spectrally selective coated side of the cover casu quo the top of the cooker cavity where it is converted to heat which is conducted through the cover tray and radiated to the food below the cover tray.
- Total power is shown as the broken line curve, and is about 2,000 watts/m 2 net cavity aperture area, a 50 cm x 50 cm cooker cavity, equipped with a 50 cm x 50 cm first, second and third window having a transmissivity of 92% and a one meter high by one half meter wide minor having a reflectivity of 90% in flat shape, provides a net to food peak power of about 500 watts for fast warm-up, but a sustainable net to food cooking power of 1,000 watts or more per square meter net cavity area cannot be reached.
- Net to food cooking power is augmented considerably, especially so at low solar altitudes prevailing in mornings, afternoons, in winter or at higher latitudes, by bending said tiltable minor, for example by compressing said tiltable minor with a profiled upper guide rail 16 or a tension rod, tape or wire 18 combined with a profiled lower guide rail 17, as shown in FIGS. 3A/3B in forenoon and afternoon orientation and in FIGS. 17A 17B.
- a profiled upper guide rail 16 or a tension rod, tape or wire 18 combined with a profiled lower guide rail 17, as shown in FIGS. 3A/3B in forenoon and afternoon orientation and in FIGS. 17A 17B.
- Simulated net to food cooking power of said basic apparatus acquiring sunlight with said tiltable minor in bent shape as a function of the solar altitude ⁇ s at the time of the day for December 21, the winter solstice at about 24 °N, is shown as the solid line curve in FIG. 3C.
- Peak power for fast warm-up is about 1,750 watts/m 2 cooker box aperture area.
- Sustainable net to food cooking power to the cooker cavity bottom is augmented by more than 40 (forty) percent from about 870 watts/m 2 to about 1,230 watts/m 2 net cavity area.
- a target sustainable cooking power of 1,000 watts/m 2 to said cooker cavity bottom can be made available for about 6 (six) hours per day, a 50 cm by 50 cm cooker cavity equipped with a 50 cm by 50 cm first window and a 50 cm wide by 1 meter high minor in optimum bent shape and tilt angle being capable of providing net to food sustainable bottom cooking power of 250 watts or more for about 6 (six) hours, e.g. from 09.00 to 15.00 hours.
- the food can conveniently be served in the cooking cavity and kept warm during the meal by placing an insulating lid or board over the cavity with food.
- the cover cavity with its tray can take over the cooking work by positioning the cover cavity with the convex side downward into casu quo onto said still-air concave reflective cavity 9.
- the next meal or dish can then be cooked, either by placing a third cover cavity or by placing an insulating lid or board over the food while cooking proceeds on heat supplied from below only.
- For professional all-day cooking it is convenient to provide a plurality of cooking cavities with different trays taking turns in cooking/heating a variety of dishes and/or beverages.
- a high degree of versatility can be provided through the use of special trays and/or inserts for particular cooking operations.
- FIGS. 4-25 an overview is shown of several embodiments casu quo examples of the method and apparatus of the present invention useful to augment convenience of cooking on light by increasing net to food heating power from the energy contained in available solar radiation.
- a novel and crucial inventive feature of the present invention resides in a) creating substantially improved light and thermal communication especially at small solar altitude angles casu quo when the sun is low, between the energy contained in solar radiation available to the cooker area and the food to be cooked casu quo the beverage to be heated, casu quo to a PV cell module area and b) in reducing heat losses drastically, especially so from the top and bottom of the cooker cavity.
- a first novel component in the present invention is introduced a first heat conducting metal plate 1 of a metal quality that is resistant to conosion by both the ambient and the cooker cavity atmospheres. On at least one surface, the surface facing sunlight when in use, of said first metal plate 1, a spectrally selective surface is provided.
- Said spectrally selective surface is characterized by being an excellent absorber ( ⁇ ) for incoming full spectrum solar energy radiation and being a poor emitter ( ⁇ ) of infrared heat radiation.
- Said first metal plate 1 thus functions as a new, one way spontaneous converter of solar radiation to heat which is instantly conducted and put to use to heat food at only minor back-radiation of heat energy to the ambient.
- Said first metal plate 1 serves as the solar energy collecting approximately horizontal underside 1 of the cavity 0 of the well insulated hot box type light cooker of the present invention.
- Said first metal plate 1 may be flat, with metal cooking vessels placed upon the plate, or formed in the shape of a tray 1, as shown in FIG. 13, or a vessel by, for example, a well-known deep drawing operation under a press.
- said first metal plate advantageously functions also as the cavity of the cooker, cooking vessels may be placed upon the tray bottom.
- a thin layer of water is provided on the bottom of the tray. Said thin layer of water next to and under the cooking vessel continuously vaporizes and condenses, transferring latent heat to the vessel bottom and vessel side. During warm-up said water conducts heat to said vessels.
- said water radiates heat upwards to the cylindrical part of said vessels.
- the rims of said cooking vessels are to be flat, so as to maximize the heat conduction contact area between said vessel rims and a heat conducting plate located above said vessel rims.
- said first metal plate in the shape of a tray 1 of cavity dimensions directly receives the food to be cooked on the bottom of said tray 1 in loose form or in a cooking bag. Intimate thermal communication between the food to be cooked and the energy source is thereby created.
- said tray 1 may function as a simmering or frying pan, or other cooking variants such as for example "Chinese wok" stir frying operations.
- the tray bottom 1 a thin layer of water is poured on the bottom of the tray 1. Above said layer of water a sieve tray is placed containing foods, such as rice, noodles, lintels, vegetables, fish, meats for steaming casu quo steam cooking. During warm-up and cooking said water supplies latent heat (steam) to said food. At the end of the day said water may serve as a reservoir of heat for extended cooking and/or warm-keeping of foods.
- a first sheet 7 of a material transparent to sunlight may be low-iron glass having an anti-reflective coating or a heat resistant polymer having a high light transmittance and a low refractive index.
- Said first transparent sheet is installed approximately horizontally below said tray and attached to said cooker cavity at a distance of approximately 10 (ten) to 20 (twenty) millimeters below said first metal sheet 1 casu quo metal tray 1.
- Useful functions of said first transparent sheet 7 comprise: a) protecting said spectrally selective coating on said metal sheet 1; b) suppression of any air cunents between the ambient and said first heat conducting metal sheet casu quo tray 1.
- a well-insulated movable cavity accommodating said first absorber tray 1.
- Said insulation 4 is preferably a combination of a moisture-proof high temperature insulation closest to the tray, backed-up by moisture-proof highly insulating medium temperature insulation of for example poly-isocyanurate, phenolic or polyurethane foam type encased in an outer enclosure of a suitable low cost material such as for example wood or plywood, alternatively a foam-aluminum sandwich or a foam-steel sandwich.
- Reflective surfaces are advantageously provided on outer wall 5 of said enclosure, exposed to reflected radiation and on all inner walls 6. Depths of said cavity can be tailored to particular cooking operations to be performed, for optimal results.
- Prefened cavity depths are approximately: a) for cooking directly in trays: approximately 10 to 100 millimeters b) for cooking in vessels: approximately 10 to 200 millimeters Said cavity 0 may be a single cavity casu quo a plurality of smaller cavities for individual eaters.
- a fourth novel component in the present invention is introduced: a second heat conducting metal plate 1, having the same conosion resistant quality as said first heat conducting metal plate 1 and provided with the same said spectrally selective coating on at least one surface, the surface facing incoming sunlight when in use, is provided.
- Said second heat conducting metal plate 1 is located in an approximately horizontal position immediately above the cavity 0 of said hot box type light cooker with the spectrally selective coating facing upwards to the light.
- Said second metal plate 1 thus performs in the same manner as said first metal plate 1 as a one way converter of incoming solar energy, spontaneously converted to heat energy, which is instantly, with minimal thermal resistance through the thin metal sheet 1, conducted to cooking vessels positioned directly under and in pressed, heat conducting communication with said second metal plate 1.
- Said second metal plate 1 serves simultaneously as the underside of an openable cover located above said cooker cavity 0, and as a common flat lid for the cooking vessels.
- Said second metal plate 1 may be flat or advantageously indented upwards, thus acquiring the shape of an inverted casu quo upside down cooking tray, as shown in FIGS. 14C-D.
- a heat resistant paint with a high emissivity ( ⁇ ) such as for example black alkyd or epoxy enamel, is advantageously provided on the underside of said second metal sheet, as a heat radiator for grill-type cooking.
- ⁇ high emissivity
- upper plus lower cavity make up a total cooker cavity 0, as shown in FIGS. 15A/15B.
- a downward indented version of said second metal plate 1 as shown in FIG. 16.
- said covering cavity incorporating said downward indented version of said second metal plate 1 is lowered thereby pressing the indented part of said second metal plate 1 onto and/or slightly into the food to be cooked.
- a hinged, tiltable flat minor 14 which is bendable like a large flat spring having its center of curvature approximately on a horizontal plane at the level of said hinges 15, as shown in FIGS. 17A 17B.
- said bendable minor In operation, at sunrise, said bendable minor is positioned to face the sun, for example, with the aid of an azimuth tracking aid in the embodiment of a shadow-casting cord or string casu quo an elastic rubber cord 19 installed between a center point at the edge of Wi and the center point at the top edge of said bendable minor 14. Said shadow-casting cord 19 to cast its shadow, as shown, for example, in FIGS. 9, 19, 22 and 23, on a vertical center line casu quo a hairline casu quo a bulls-eyes line positioned on the minor surface of said bendable minor 14 and/or on a horizontal hairline casu quo bulls-eyes line on the upper surface of said first window Wi.
- said first compression is about 4.6% (46 millimeter) at a conesponding minor tilt angle of 60°, facing the eastern sun.
- the bendable minor proceeds under the guide rail to larger minor tilt angles s m approximately according to the relationship s m ° ⁇ 60° + .42 x ⁇ s ° and to progressively less minor curvature casu quo less minor compression, for example at a minor tilt angle of 70°, said compression is reduced to about 2% (20 millimeter).
- a minor tilt angle of 80° said compression is reduced to about .5% (5 millimeter).
- the minor position thus becomes more upright and the minor springs back to a less curved shape.
- a minor tilt angle of approximately 85° conesponding to a solar altitude angle ⁇ s of approximately 60° the minor has sprung back to its original flat shape.
- Said apparatus is then positioned to face and follow the sun in westerly direction and said minor is made to follow said guide rail, initially in flat shape, until a tilt angle of 85°, thereafter compressed to a progressively more curved shape until at 60° minor tilt angle, said 1 m high minor reaches the second most compressed and most curved shape of the day, at sunset. Said minor is thereupon released from said guide rail and left flat overnight in approximately horizontal position, covering and protecting the apparatus.
- the maximum solar altitude angle ⁇ s is 42.6°
- optimum minor tilt angle at noon is about 78°
- the optimum minor track is from 60° at sunrise to 78° at noon and then back to 60° at sunset, the minor remaining curved, albeit with variable curvature from sunrise to sunset.
- Said apparatus is then positioned to face and follow the sun in westerly direction.
- Guide rails and their minor compression profiles are optimized and made convenient for use in different seasons and their latitudes of destination.
- Minor tilting and bending casu quo azimuth tracking of the apparatus may be by manual positioning, alternatively by a pre-programmed spring-driven or electrically driven mini- motor attached to said minor casu quo said guide rails and tracking said minor guide rails.
- Said manual positioning is made convenient by providing one or more shadow-casting rods casu quo shadow-casting beads 35, hereinafter called shadow-casters.
- Said shadow-casters 35 are made of a non-scratching material such as, for example, rubber or a polymer, and installed in sliding anangement on said shadow-casting cords 19 in such a manner that said shadow-casters are maintained in a horizontal position on said cords, with said shadow-casters longest dimension in parallel to said hinge line of said tiltable casu quo tiltable and bendable minor.
- Said shadow-casting cords 19 are installed between suitable points on the surface casu quo the upper edge of said minor 14 and suitable points located on the meeting line where said window i casu quo said PV cell module meets said second window w 2 .
- Said shadow-casters serve to obstruct light reflected by said minor and are to cast their shadow lines on the surface of said PV cell module casu quo on the surface of said first window at about said meeting line between said PV cell module casu quo said first window and said second window. Visibility of said shadow lines can be improved by momentary hand shading of incoming direct (non- reflected) light.
- shadow-casters communicating with said minor surface at about half minor height result in reflected light from the upper half of said minor being directed onto said PV cell module casu quo onto and through said first window.
- shadow-casters communicating with said minor surface at about one quarter height result in reflected light from the upper three quarters of said minor surface being directed onto said PV cell module casu quo onto and through said first window.
- Said bendable minor is characterized in operation by its ability to accommodate large ranges of solar altitude angles as shown in FIGS. 17C and 17D.
- said bent minor positioned at 75° minor tilt angle s m can accommodate a range of solar altitude angles ⁇ s from about 33° to about 45°, which is more than the solar altitude path between 10 a.m. (34.3°) via 12 noon (42.6°) to 2 p.m. (34.3°) on the winter solstice day at 24° latitude, thereby enabling the cooking of several hot lunches without a change of position of said bendable minor on said guide rail.
- said minor 14 is advantageously fabricated using a multi-channel extruded double or triple walled polymer cardboard and installed with said multiple channels in upward direction, as shown in FIG. 21, functioning as chimneys providing draft for air, warmed-up after cooling the underside of said PV cell modules positioned on ridges under and/or sideways from said minor 14.
- Said multichannel extruded polymer cardboard may have its own resilience, alternatively one or more spring steel rods casu quo glass fiber reinforced polyester or epoxy spring rods 33 may be inserted in said extruded channels in order to provide and maintain long-lasting resilience of said bendable minor.
- a horizontal connecting rod 34 may be attached to said spring rods for long term wear resistant, accurate guide rail tracking.
- a sixth novel component is introduced for the construction of said half-banel shaped concave reflective cavity 9, as shown in FIGS. 18A-18E, in the form of a flexible curved minor of variable shape or curvature that may be circular, catenary, parabolic, elliptic or polygonal, preferably having their center of curvature on or slightly to the right of the meeting line of said first and second window.
- the shape, the curvature, the depth, and the location of the nadir casu quo the lowest point of said flexible, curved minor are adjustable, both vertically and horizontally as a function of window transmissivity and/or minor reflectivity for optimization of light transfer from said bendable minor via said first window Wi, enabling the most favorable angles of light incidence to the underside of the cooker cavity at various latitudes and solar altitude angles, deeper cavities reducing reflections and improving said angles of incidence.
- Said minor may be flexible, installed in half-banel shape concave curvature by hanging it from two sides parallel to the axis of rotation of said half-banel shaped concave reflective cavity and provided with drain holes in the nadir line for draining- off unwanted incursions from rain, food spills and the like.
- two rolls are provided, parallel to said axis of rotation, on each side of said half-banel shaped concave reflective cavity to be. On each roll, part of the reflective sheet material is rolled.
- the rolls are installed at both ends of said reflective concave cavity to be and the flexible sheet minor material is unwound and lowered to form a concave reflective cavity of desired shape, curvature and location of the nadir.
- said minor sheet material is placed on both rolls as one endless band, with the reflective side on the outside.
- Said prefened embodiments can provide a perfectly clean flexible curved minor at all times, any incursion of dust, rain, food spills and the like can be cleaned off conveniently by rolling- on of the flexible minor, wiping clean any unclean section as it moves over a roll.
- a seventh novel component is introduced for generating electricity by PV cells in the form of PV cell modules 21 positioned in approximately horizontal position, as shown in FIG. 19A, casu quo vertical position under and/or sideways from said bendable minor 14, as shown in FIG. 19D.
- the electricity delivered by said PV cell module may be used to charge a battery.
- Said electricity generation may be positioned when the apparatus is not used for cooking or simultaneous with cooking whenever too much cooking power is available. Electricity generation may also be a continuous operation, either as part of or an attachment to the apparatus, as shown in FIG. 19B, or as a stand-alone embodiment, as shown in FIG. 19C.
- An eighth novel component is introduced in the form of a halogen light source 26, installed in an insulated, reflective box or a support structure that can be positioned above said cooker cavity, as shown in FIGS. 20A/20B, casu quo under said cooker cavity, covered with an insulating board as shown in FIGS. 20C/20D, for cooking operations when sunlight is not available casu quo marginal and electricity can be made available, for example, from said battery or from other sources.
- shadow-casting cords 19 serving as azimuth tracking aids through shadow-casting communication with hair lines casu quo bulls-eyes lines 37 positioned vertically on the reflective surface of said minor 14 casu quo positioned horizontally on the upper surface of said first window Wi, preferably between multiple shorter hairlines 38, positioned in sundial manner on the upper surface of said first window i, casu quo on the reflective surface of said minor 14 at the locus of said hinge line 15 as shown in FIGS. 9B, 18D, 18E, 19B, 22, 23A and 23B.
- Said shadow-casting cords 19 serve simultaneously as support cords for shadow-casting rods casu quo shadow- casting beads 35 serving as bendable minor positioning aids casu quo solar altitude tracking aids through shadow-casting communication with said hair line 37 on said first window i, casu quo with the upper light collecting surface of said PV cell module 21 casu quo of said first window i.
- Optional novel components are introduced in the form of flat tiltable booster minors/reflectors 28, positioned with hinges near outer edges of said first and second windows perpendicular to said axis of rotation of said half-banel shaped concave reflective cavity as shown in FIGS. 23 A, 23B and 23C.
- Said booster minors serve to acquire and direct additional sunlight onto said PV cell modules and/or onto and through said first and third windows especially so in sunbelt latitudes and/or whenever said apparatus is left off-azimuth, thereby relaxing azimuth-tracking requirements.
- a second and a third sheet 7 of a material transparent to sunlight are provided.
- Said transparent sheets 7 are installed window-like, in approximately horizontal position above said heat conducting second metal plate 1 casu quo above said second selectively surfaced absorber 1 at a distance of 10 (ten) to 20 (twenty) millimeters of said second metal plate 1, and of each other, thereby forming two insulating air chambers above said second metal plate casu quo indented tray casu quo absorber 1.
- Prefe ⁇ ed transparent materials are low-iron glass having an anti-reflective coating for the upper, outermost casu quo third sheet and a highly transparent thin Fluoropolymer, for example Teflon FEP ® for the intermediate sheet casu quo the second transparent sheet.
- sheets 13 of a material transparent to sunlight are provided.
- Said transparent sheets 13 are installed in approximately horizontal position under said cooker cavity and sideways from said outer wall of said cooker cavity, closing off the windows casu quo apertures i and w above said concave reflective cavity 9, thereby creating a closed-off, still-air, concave reflective cavity 9, protected from incursion of for example rain, wind, dust, debris, spilled foods and the like.
- Prefened transparent materials are low-iron glass, having an anti-reflective coating on the surfaces facing the light and/or highly transparent polymers such as, for example, fluoropolymers, acrylics, polyesters, polycarbonates.
- First 1 and second 1 heat conducting metal plates are used as lower and upper high temperature light absorbers in food cooking environments.
- Prefe ⁇ ed economical long life materials resistant to conosion in said environments are ferritic stainless steels, sheet metal, for example types 409, 430 or 434, in the bright annealed surface quality.
- Said prefe ⁇ ed material can have a 0.2% yield strength of 205 MPA at a stagnation temperature of 300 centigrade, said yield strength being higher than the yield strength of conventional more expensive 18% chrome, 8%) nickel austenitic stainless steels, such as type 304.
- prefe ⁇ ed material is a low thermal expansion coefficient of less than sixty percent of said conventional stainless steel and last but not least an excellent heat conductivity of 24 watts per meter centigrade in the temperature range of twenty to two hundred centigrade; that means more than fifty percent better heat conductivity than said conventional austenitic stainless steel.
- Prefened sheet metal thickness ranges from about one tenth of a millimeter for small portable light duty cookers to about two millimeter for heavy duty professional cookers. Said sheet metal can be easily formed, even in said spectrally selective coated state into said cavity shaped first and second trays by well-known simple deep drawing techniques without intermediate reheating.
- Said ferritic stainless steel sheet metal is eminently resistant to stress conosion and more importantly, to pitting types of conosion caused by halogen ions such as chlorides as may be present in many waters and salted foods.
- halogen ions such as chlorides as may be present in many waters and salted foods.
- a prefened economical long life spectrally selective coating to be deposited on said ferritic stainless steel sheet metal is black chromium oxide in the benign trivalent state. Said black chromium oxide coating on ferritic stainless steel has been tested for high temperature stability up to four hundred centigrade and has shown no signs of degradation.
- Coatings absorptivity to coatings emissivity ratios ( ⁇ / ⁇ ) of over 90/10 can be reached for long-life coatings on bright annealed ferritic stainless steel surfaces.
- Said coatings can be deposited by a continuous coil coating operation, alternatively on sheets, by a batch process.
- Non-stick fluorocarbon (Teflon) coatings can be advantageously applied on one side (the side in contact with the food) of said coated ferritic stainless steel sheets.
- a suitable material is a stretchable casu quo elastic rubber, opaque casu quo black and provided with UV protection additives against aging casu quo provided with a textile, spun around said rubber cord for protection.
- a prefe ⁇ ed material is 3 to 5 (three to five) millimeter thick low iron glass, advantageously equipped with a low reflection surface on the sunny side.
- a more prefened material, especially for mobile, transportable cookers is a light weight, highly transparent fluoropolymer, for example tradenamed Teflon FEP ® 100A/200A or Hostaflon ® thin film of 0.025 to 0.05 millimeter thickness, as this material is characterized by the highest available light transmissivity ( in the order of 96 percent) combined with the lowest available refractive index of 1.34 and the highest critical angle of light incidence.
- the resistance of said fluoropolymer to photo-degradation is excellent, even at the high temperatures in the 200 centigrade range that may occur during stagnation conditions.
- its overall solar energy collection performance is better than glass and its low refractive index combined with its high critical angle of light incidence allows for more solar energy collection, thereby extending the operating window for solar cooking early in the morning and late in the afternoon, as well as in winter, spring and autumn seasons and on cloudy or hazy days when the diffused or scattered light component is large.
- Said fluoropolymer sheet is further characterized by excellent non-stick qualities, facilitating easy cleaning, should any food spill on and stain said normally transparent fluoropolymer sheet. For the same reasons, for said upper transparent sheets 7, 8, a combination of a 3-5
- two lighter, unbreakable polymer sheets are prefened as transparent windows above said second absorber 1, for example two of said fluoropolymer sheets 7, or a combination of a fluoropolymer intermediate sheet and a Tedlar ® , acrylic, polyester or polycarbonate outermost sheet, communicating with and cooled by the ambient .
- suitable transparent materials are said glass, for stationary versions of said apparatus of the present invention.
- Transparent polymers such as, for example, fluoropolymers, acrylics, polyesters, and polycarbonates in the form of plates or films are prefe ⁇ ed transparent materials for light-duty casu quo mobile applications. Materials with a transmissivity of 92% are readily available, materials with a transmissivity of 97% are available.
- 500 watts peak power cooker a total quantity of about 1.5 square meters of transparent sheet casu quo foil material is required.
- For said half banel shaped concave reflective cavity casu quo reflector 9 a variety of highly reflective materials may be used, depending on the cooking operation.
- Said materials may be in the form of curved glass minors or coated aluminum reflectors, for said stationary, heavy duty cooking operations.
- said highly reflective materials may be rigid, or low cost semi-rigid, such as for example aluminized cardboard.
- said highly reflective materials may be flexible, fabricated for example from aluminized polyester films, aluminized foams. Materials with a reflectivity of 90% are readily available, materials with a reflectivity of 94% are available.
- PV electricity For a quality of life supply of PV electricity, enabling a six person family to enjoy electric light, a refrigerator and a television set casu quo a computer, about one third of a square meter of PV module will be required.
- wood or plywood of a water and heat resistant type is a suitable material.
- casu quo modules can be positioned in approximately horizontal position under said bendable minor 14.
- FIG. 5A a prefened embodiment of the apparatus is shown.
- the basic features of said prefened embodiment are similar to said basic apparatus, however, the height of said bendable minor 14 is increased, thereby enabling said bendable minor to acquire more additional sunlight and - advantageously-using its tiltable and bendable advantages - reflectively direct with favorable angles of incidence, said more additional sunlight onto said PV cell module casu quo onto and through said first window Wi and onwards via said half-banel shaped concave reflective cavity 9 to the underside of said heat conducting tray 1 above said second window w 2 , thereby further augmenting net to food cooking power.
- the apparatus of said prefened embodiment is capable of providing further augmented net to food cooking power, for example, at 24°N, December 21, winter solstice, simulated net to food cooking power for said prefened embodiment with 50% higher minor is shown in FIG. 5B.
- Peak warm-up power is increased to about 2,100 watts/m 2 cooker box light aperture, availability of more than 250 watts net sustainable bottom power for a 50 x 50 cm cooker cavity is increased to about 8 hours, from 08.00 hours to 16.00 hours.
- Bringing half a liter of 15° C water to boiling temperature of 100° C in a kettle on a one kilowatt natural gas fired gas range burner takes about six minutes casu quo one hundred watt hours of gas to transfer a net amount of heat of fifty watt hours to the water, thermal efficiency being about fifty percent.
- a hot box type light cooker according to the present invention adequate for a six person family, consisting of two adults and four children, should be sized for a net to food peak power of about 500 watts.
- FIG. 6A a further prefe ⁇ ed embodiment of the apparatus useful in the method is shown.
- the basic features of said further prefened embodiment are similar to said basic apparatus, however the width of said first window Wi is increased casu quo widened, thereby widening the light-acquiring aperture between said cooker cavity and the hinged edge of said bendable minor, and increasing the width perpendicular to said axis of rotation of said half-banel shaped concave reflective cavity.
- the height of said bendable minor is increased to double the widened width of said first window Wi , thereby enabling said widened first window Wi and said higher bendable minor to acquire still more additional sunlight with favorable angles of incidence onto said PV cell module casu quo onto and through said first window Wi and onwards via said widened half-banel shaped concave reflective cavity 9 to the underside of said heat conducting tray above said second window w 2 , thereby providing still further augmented net to food cooking power.
- an apparatus having a 30% wider first window Wi combined with a 30% higher tiltable and bendable minor enables an increase in net to food peak warm-up power to about 2,100 watts/m 2 .
- FIG. 6B Simulated net to food cooking power for said further prefened embodiment is shown in FIG. 6B.
- an apparatus having a 50 cm by 50 cm cooker cavity, a 50 cm by 65 cm first window and a 50 cm wide by 1.30 m high tiltable and bendable first booster minor in operation at 24°N, December 21, winter solstice, can provide a peak warm-up power of about 525 watts and a sustainable bottom power availability of more than 250 watts for about 8 hours (08.00 - 16.00), casu quo of more than 350 watts for about 5 hours (09.30 - 14.30).
- FIG. 7A a still more prefe ⁇ ed embodiment of the apparatus useful in the method is shown.
- the basic features of said still more prefe ⁇ ed embodiment are similar to said basic apparatus, however, the width of said first window i is 30% wider than the width of said second and third windows w and w 3 and the height of said hinged, tiltable and bendable minor is further increased to three times the width of said window wi, thereby enabling said widened first window Wi and said heightened bendable minor 14 to acquire still more sunlight with favorable angles of incidence onto said PV cell module 21 casu quo onto and through said widened first window Wi and onwards via said widened half-banel shaped concave reflective cavity 9 to the underside of said heat conducting tray 1 above said second window w 2 , thereby providing still more augmented net to food cooking power.
- an apparatus having a 35 cm x 70 cm cooker cavity, a 45 cm x 70 cm first window combined with a 70 cm wide x 1.35 m high bendable minor can provide at 24°N, December 21, winter solstice, a peak warm-up power of about 600 watts and a sustainable bottom power availability of more than 300 watts for about 8 hours (08.00 - 16.00) casu quo of more than 400 watts for about 6 hours (09.00 - 15.00).
- FIG. 7A simulated net to food cooking power in watts/m 2 cooker cavity light aperture area as a function of solar altitude angle ⁇ s during the day on winter solstices, spring and autumn equinoxes and summer solstices is shown:
- FIG. 7D at 32° parallels
- FIG. 7E at 40° parallels
- FIG. 7F at 48° parallels hi FIG. 7G at 56° parallels
- Net to food cooking power, attainable worldwide at said different latitudes and in said different seasons based on glass transmissivity of 92% and minor reflectivity of 90% is shown simulated in FIG. 11. Net to food cooking power attainable as shown can be increased by about 10% through the use of presently less readily available glass material having about 97% transmissivity and minor material having about 94% reflectivity.
- FIG. 8A a reduced cost embodiment of the apparatus useful in the method is shown, suitable for cooking on light in equatorial casu quo tropical regions and/or under very windy circumstances precluding the use of high minors.
- the basic features of said reduced cost embodiment are similar to said basic apparatus of FIG. 2 A, however, the width of said window w t is increased, the upper minor is flat and its height is reduced to about equal to the width of said first window i and said cover cavity 0 with its tray 1 are replaced by an insulating board. Simulated net to food cooking power of said reduced cost embodiment of the apparatus useful in the method on December 21, the winter solstice at 24°N, is shown in FIGS.
- peak power is about 1,100 watts/m 2 (at the equator about 1,200 watts/m 2 ) and a target sustainable power of 1,000 watts/m 2 to said cooker cavity bottom can be made available for about 4 hours per day (at the equator about 6 hours per day). Simulated net to food cooking power at spring and autumn equinoxes and summer solstice at 24°N is shown in FIG. 8D and 8E.
- FIG. 9 another prefe ⁇ ed embodiment of the apparatus useful in the method is shown.
- a set of two PV cell modules casu quo a light- transparent cavity is installed, permanently or temporarily, casu quo removable in approximately vertical and central position in said half-banel shaped concave reflective cavity, now having two light acquiring apertures casu quo first windows, wia and Wib, sideways of said light transparent cavity.
- Said light transparent cavity being capable of receiving casu quo accommodating a movable cooker casu quo heater cavity suitable for heating liquids and/or of receiving casu quo accommodating commercially available 1.5 liter PET water bottles, which are convenient for purification of drinking water by a combination of light and heat.
- Said light transparent cavity may be made of said low-iron glass having an anti-reflective surface, the surface when in use facing incoming light, alternatively made of a highly transparent polymer.
- Said movable cooker casu quo heater cavity may be made of said highly heat conducting material, having outer surfaces, the surfaces when in use facing incoming light, coated with said spectrally selective coating.
- Said movable cooker casu quo heater cavity being maintained in said transparent cavity with a distance of 10 (ten) to 20 (twenty) millimeters between the outer walls of said cooker casu quo heater cavity and the inner walls of said light transparent cavity, thereby creating an insulating air chamber reducing heat losses.
- the central, lower part of said half-banel shaped concave reflective cavity is advantageously lifted up, for example by means of a bar or a roller bar, thereby converting said half-banel shape into two approximately quarter-banel shapes both having variable curvature optimized for augmented net to liquid cooking power casu quo augmenting net to drinking water light and heating power.
- FIG. 10A, 19 and 22 for cooking and for electricity generation prefened embodiments of the apparatus useful in the method are shown.
- PV panels casu quo modules hereinafter called PV module 21, are positioned in approximately horizontal position on ridges 22 perpendicular to said minor 14 under casu quo sideways from said hinged tiltable and bendable minor casu quo reflector 14, acting simultaneously as a chimney providing draft for a warmed air stream warmed-up upon cooling the underside of said PV cell module.
- the height of said minor 14 can be variable, for example from one to many times the width of said PV module.
- a practical minor 14 height is about three times the width of said PV module as measured perpendicular to the hinge line of said minor 14.
- For said prefened embodiments having said practical ratio 3 of minor 14 height h m to PV module width Wi simulated net to PV cell sunlight inadiation as a function of solar altitude angle ⁇ s during the day is shown in FIG. 10B.
- the winter solstice, net to cell peak net inadiation is about 1,600 watts/m 2 of PV module area even at a low ⁇ s of only 26.6°, where a state-of-the-art non-tracking PV module is shown to reach about 250 watts/m 2 peak net to cell inadiation.
- ⁇ s is about 6°
- a state-of-the-art non-tracking PV module receives no net to cell sunlight inadiation
- a PV cell module incorporated into the apparatus useful in the method receives a practical and convenient net to cell sunlight inadiation of about 500 watts/m 2 .
- PV cell performance casu quo efficiency of conversion of sunlight to electricity is augmented by about 0.4 percent for every degree centigrade drop in temperature.
- FIG. 10D at 32° parallels
- FIG. 10E at 40° parallels
- PV power cell net light inadiation attainable worldwide at said different latitudes and in said different seasons is shown simulated in FIG. 12, based on cover glass transmissivity of 92%) and minor reflectivity of 90%. Net light inadiation attainable as shown can be increased by about 10% through the use of presently less readily available materials, such as glass having about 97% transmissivity and minor material having about 94% reflectivity.
- INDUSTRIAL APPLICABILITY Several embodiments were tested by the inventor in the Almeria area in Southern Spain in November 2003 for various cooking operations, for example in FIG.
- a prefened embodiment suitable for windy environments is shown, incorporating two upper guide rails 16 supported by a stabilized upper structure 30 with tie-rods 30 for maintaining optimum minor guide rail profile 20 position in relation to said minor hinge line 15 and fine (one degree) tuning of minor tilt angle, said prefened embodiment as shown in FIG. 24, having three cooking trays with top insulation, bendable minor surface area 1.35m x .625m, first window area .45m x .625m, trays area three times .35m x .20m. was tested for cooking foods such as: cooking of brunch consisting of fried eggs, fried bacon and fried tomatoes.
- tray 1 fried eggs for three persons
- tray 2 fried bacon for three persons
- tray 3 fried tomatoes for three persons.
- Said food items were fried in 20 grams each of olive oil in less than 15 minutes at 144°C oil in tray temperature.
- Said cooked food items had the following characteristics: Fried eggs, sunny side up, well done.
- Fried bacon crisp, well done.
- Fried tomatoes juicy, tender, well done. All said fried food items had excellent taste and texture.
- said minor is attached in a rocking manner to a cross bar 39 rigidly connecting the ends, hereinafter called the upper ends of two pivoted sliding levers casu quo two sliding rocking arms, hereinafter called rocker arms 40.
- said minor is attached in a rocking manner to the frame of the cooker at the locus line of the outer edge of said first window i.
- Each of said rocker arms is equipped with a slot 41 plate casu quo a slot having a width adequate for snugly accommodating a pivot 42 casu quo a roll 43 on said pivot and having a slot length at least equal to the maximum desired minor compression C m as shown in FIG. 17C casu quo 17D as a function of h m .
- the other ends of said rocker arms are preferably connected to each other by a shaft 44 casu quo a hollow shaft equipped with rolls 45 adequate for snugly following rocker arm pulling guide rail profiles casu quo minor compression guide rail profiles, hereinafter called guide rail profiles C p .
- the ends of said shaft are preferably equipped with extensions casu quo extensions with rolls functioning as pivots 42 casu quo pivots with rolls 43 adequate for snugly accommodating slots 41 casu quo slits in casu quo on connecting rods 46 installed on both sides of said cooker frame and connecting said shaft extensions to pivots 42 positioned on a hinge 15 supported rocking rack 47 carrying a PV cell module 21 casu quo PV cell modules.
- said rolls 45 and said shaft 44 are forced to travel under said guide rail profiles which are preferably incorporated in wear resistant guide rail plates 48 equipped with punched-in serial numbers casu quo registration numbers casu quo National and/or State license plate numbers qualifying for emission credits and installed in a stable, rigid manner below and perpendicular to said hinge lines 15 of said minor 14 on each side of the frame of said cooker.
- a handle bar 49 with grips 50 can be attached, preferably in a rocking manner to said shaft 44, as shown in FIGS. 25A and 25B.
- Said guide rail plates are characterized by possessing a profile that results in said minor compression C m , as shown in FIG.
- dials 51 On each side of the cooker frame, a series of lines at desired degree intervals pointing at said lower hinge 15 line are installed on casu quo under said guide rail plates 48 like sundial type dials, hereinafter called dials 51. Said dials show the tilt angle of said rocker arms 40 casu quo the tilt angle of said minor 14.
- said dials enable easy and accurate positioning of said rocker arms, thereby enabling optimum minor tilt angles in combination with optimum minor curvatures for optimum sunlight harvesting and onward reflective transport of harvested sunlight by said minor 14, simultaneously easy and accurate azimuth tracking is enabled, a person conveniently standing in the shade behind said minor 14 can, in one movement, aim the whole apparatus including minor 14 and PV cell module 21 at the sun by simply putting casu quo keeping said rocker arm 40 casu quo the vertical edge of said minor 14 and elastic cord 19 in a vertical plane parallel to the rays of the sun.
- connecting rods 46 attached to said shaft 44 are forced to push casu quo pull a hinge 15 supported rocking rack 47 holding a PV cell module 21 casu quo PV cell modules into positions optimized for acquiring sunlight onto said PV cell modules at optimum angle of incidence, thereby enabling highly efficient electricity generation in a low cost two-axis sun tracking manner that can be optimized for all latitudes and/or seasons.
- Optional rocking flat booster minors 28 having a height up to about equal to the height of said bendable minor 14 and having a width up to about half the width of said bendable minor 14 are attached with hinges 15 to said rocker arms 40 on both sides of said bendable minor 14.
- Said booster minors serve in open position with an optimum opened angle of about 120 degrees to further increase the acquisition of sunlight or serve - at the option of the cook - as blinds, in closed position blocking the glare of said bendable minor 14 whenever the cook needs to work on casu quo in said cooking trays.
- the points of engagement of said connecting rods 46 on said PV cell support rack casu quo the location of the pivots 42 on said support rack can be optimized, thereby enabling at all latitudes and in any season favorable angles of incidence of sunlight on said PV cells.
- pulling ropes casu quo cords 52 are installed between suitable points of engagement on said rocker arms 40 and said PV cell support rack, for example via pulleys 53 installed on casu quo in supports 54 extending from the frame of said cooker.
- optimization of PV cell tilt angle for latitudes and/or seasons can be accomplished by optimizing the points of engagement of said ropes casu quo said cords on said rocker arms and/or said PV cell support rack.
- a shadow-casting gnomon 55 is positioned on the outer edge of said PV cell support rack, as shown in FIG. 25B, and whereby a small or no shadow is indicative of an optimum position.
- the curved and flat reflective surfaces casu quo walls of said half- banel shaped concave reflective cavity are insulated on their convex side casu quo their outside surfaces.
- said insulated 56 reflective walls under said cooking trays enable an increase in temperature inside said half-banel shaped concave reflective cavity, by putting to good use any heat resulting from non-ideal reflections inside said concave reflective cavity.
- the hot surfaces on the underside of said cooking trays "face” a "space” and a reflecting surface which is hot and has a low absorptivity, consequently heat losses from said cooking trays are reduced, net to food cooking power is increased and higher food processing temperatures can be reached faster and maintained longer.
- reflective hinged wind shields 58 are installed, perpendicular to said lower hinge 15 line of said minor 14 on both sides of said first window wi.
- said windshields 58 can be held upright by shadow-casting elastic cords 19 with shadow-casting beads 35 installed between said windshields and said cross bar 39.
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Sustainable Development (AREA)
- Sustainable Energy (AREA)
- Thermal Sciences (AREA)
- Physics & Mathematics (AREA)
- Combustion & Propulsion (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Photovoltaic Devices (AREA)
- Baking, Grill, Roasting (AREA)
- Management, Administration, Business Operations System, And Electronic Commerce (AREA)
Abstract
Description
Claims
Priority Applications (8)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2004245925A AU2004245925A1 (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
| EP04752772A EP1639654A2 (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
| BRPI0411277-6A BRPI0411277A (en) | 2003-06-04 | 2004-05-19 | method for achieving a worldwide reduction of carbon dioxide emissions and deforestation; apparatus for acquiring sunlight and for converting sunlight into heat for cooking purposes and / or electricity; tradable greenhouse gas emission prevention credits; tradable certified emission reductions purchased and / or accumulated by persons in exchange for greenhouse gas emissions avoided by persons while cooking and / or heating substances and / or generating electricity in sunlight; accelerated development; application of sunlight to the human body and advertising and / or advertising fees and / or rewards |
| CA002526442A CA2526442A1 (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
| GB0523829A GB2418245A (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
| AP2005003472A AP2005003472A0 (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation. |
| US10/559,348 US20060124166A1 (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
| IL172341A IL172341A0 (en) | 2003-06-04 | 2005-12-01 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US47546803P | 2003-06-04 | 2003-06-04 | |
| US60/475,468 | 2003-06-04 | ||
| US10/801,864 | 2004-03-17 | ||
| US10/801,864 US20040248051A1 (en) | 2003-06-04 | 2004-03-17 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2004109195A2 true WO2004109195A2 (en) | 2004-12-16 |
| WO2004109195A3 WO2004109195A3 (en) | 2005-02-17 |
Family
ID=33493419
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2004/015817 Ceased WO2004109195A2 (en) | 2003-06-04 | 2004-05-19 | Method and apparatus for achieving worldwide reduction of carbon dioxide emissions and deforestation |
Country Status (9)
| Country | Link |
|---|---|
| US (1) | US20040248051A1 (en) |
| EP (1) | EP1639654A2 (en) |
| AP (1) | AP2005003472A0 (en) |
| AU (1) | AU2004245925A1 (en) |
| BR (1) | BRPI0411277A (en) |
| CA (1) | CA2526442A1 (en) |
| GB (1) | GB2418245A (en) |
| IL (1) | IL172341A0 (en) |
| WO (1) | WO2004109195A2 (en) |
Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102008001640A1 (en) | 2008-05-07 | 2009-11-12 | Peter Dr.-Ing. Draheim | Photovoltaic concentrator for concentrating sunlight for use in e.g. photovoltaic panel, has mirror component allowing incident light to be deflected onto absorbing element that is statically mounted with respect to mirror component |
| DE202009012152U1 (en) | 2008-05-07 | 2010-09-16 | Draheim, Peter, Dr.-Ing. | Device for concentrating incident light |
| DE102009055432A1 (en) | 2009-04-19 | 2010-10-28 | Peter Dr.-Ing. Draheim | Apparatus and method for concentrating incident light |
| KR20190066817A (en) * | 2017-12-06 | 2019-06-14 | 한국광기술원 | Apparatus and Method for Making Augmented Reality Image |
Families Citing this family (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2922997A1 (en) * | 2007-10-24 | 2009-05-01 | Aurelien Cabarbaye | STATIC SOLAR CONCENTRATOR FORMED IN SPIRAL AND PROVIDED WITH MIRRORS |
| US20090144096A1 (en) * | 2007-12-04 | 2009-06-04 | S2 Corporation Dba Bluefield Holdings Inc. | Valuing environmental credits |
| FR2941038B1 (en) * | 2009-01-15 | 2012-11-30 | Andre Jean Marie Philippe Cabarbaye | OPTIMAL STATIC SOLAR CONCENTRATOR SHAPED IN SPIRAL AND PROVIDED WITH MIRRORS |
| ITFI20090063U1 (en) * | 2009-10-08 | 2011-04-09 | Graffiti By Ral 92 S R L | BARBECUE WITH SOLAR ENERGY |
| US20120117003A1 (en) * | 2010-11-09 | 2012-05-10 | Benaron David A | Geoengineering Method Of Business Using Carbon Counterbalance Credits |
| CN102566604B (en) * | 2012-03-09 | 2014-03-05 | 济南大学 | An automatic sun tracking device |
| CN106685343A (en) * | 2016-11-18 | 2017-05-17 | 中国电力科学研究院 | Solar energy supply apparatus used in arctic region |
| CN106602994A (en) * | 2017-02-22 | 2017-04-26 | 钟桂冰 | Double-layer solar energy photovoltaic power generation cell having high concentration ratio |
| CN106602995A (en) * | 2017-02-22 | 2017-04-26 | 钟桂冰 | Solar-energy photovoltaic power generating cell possessing high concentration ratio |
| EP3607253A1 (en) * | 2017-04-05 | 2020-02-12 | Ecole Polytechnique Federale de Lausanne (EPFL) | Box-type solar cooker |
| CN115636315B (en) * | 2021-01-18 | 2025-07-01 | 云智汇(武汉)科技服务有限公司 | A conductive guide rail locking structure for monitoring dynamic environment in a machine room |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3938497A (en) * | 1974-12-10 | 1976-02-17 | Stella Andrassy | Apparatus for solar cooking |
| US4376372A (en) * | 1980-06-02 | 1983-03-15 | English Jr Edgar | Solar energy conversion apparatus |
| JP2653368B2 (en) * | 1988-04-21 | 1997-09-17 | 工業技術院長 | Solar cooker |
| US5617843A (en) * | 1996-07-12 | 1997-04-08 | Erwin; Samuel F. | Solar oven with orienting apparatus |
| US20020188459A1 (en) * | 2000-11-28 | 2002-12-12 | Erickson Stewart E. | Resource conservation method |
-
2004
- 2004-03-17 US US10/801,864 patent/US20040248051A1/en not_active Abandoned
- 2004-05-19 AU AU2004245925A patent/AU2004245925A1/en not_active Withdrawn
- 2004-05-19 BR BRPI0411277-6A patent/BRPI0411277A/en not_active Application Discontinuation
- 2004-05-19 CA CA002526442A patent/CA2526442A1/en not_active Abandoned
- 2004-05-19 AP AP2005003472A patent/AP2005003472A0/en unknown
- 2004-05-19 EP EP04752772A patent/EP1639654A2/en not_active Withdrawn
- 2004-05-19 WO PCT/US2004/015817 patent/WO2004109195A2/en not_active Ceased
- 2004-05-19 GB GB0523829A patent/GB2418245A/en not_active Withdrawn
-
2005
- 2005-12-01 IL IL172341A patent/IL172341A0/en unknown
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102008001640A1 (en) | 2008-05-07 | 2009-11-12 | Peter Dr.-Ing. Draheim | Photovoltaic concentrator for concentrating sunlight for use in e.g. photovoltaic panel, has mirror component allowing incident light to be deflected onto absorbing element that is statically mounted with respect to mirror component |
| DE202009012152U1 (en) | 2008-05-07 | 2010-09-16 | Draheim, Peter, Dr.-Ing. | Device for concentrating incident light |
| DE102009055432A1 (en) | 2009-04-19 | 2010-10-28 | Peter Dr.-Ing. Draheim | Apparatus and method for concentrating incident light |
| KR20190066817A (en) * | 2017-12-06 | 2019-06-14 | 한국광기술원 | Apparatus and Method for Making Augmented Reality Image |
| KR101997770B1 (en) | 2017-12-06 | 2019-07-08 | 한국광기술원 | Apparatus and Method for Making Augmented Reality Image |
Also Published As
| Publication number | Publication date |
|---|---|
| BRPI0411277A (en) | 2006-08-01 |
| IL172341A0 (en) | 2009-02-11 |
| US20040248051A1 (en) | 2004-12-09 |
| WO2004109195A3 (en) | 2005-02-17 |
| AU2004245925A1 (en) | 2004-12-16 |
| AP2005003472A0 (en) | 2005-12-31 |
| CA2526442A1 (en) | 2004-12-16 |
| EP1639654A2 (en) | 2006-03-29 |
| GB2418245A (en) | 2006-03-22 |
| GB0523829D0 (en) | 2006-01-04 |
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